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Flood Mapping in a Complex Environment Using Bistatic TanDEM-X/TerraSAR-X InSAR Coherence

机译:使用BISTOGIC TANDEM-X / TERRASAR-X INSAR连贯性在复杂环境中的洪水映射

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摘要

In this paper, we assess the flood mapping capabilities of the X-band Synthetic Aperture Radar (SAR) imagery acquired by the bistatic pair TanDEM-X/TerraSAR-X (TDX/TSX). The main objective is to investigate the added value of the bistatic TDX/TSX Interferometric Synthetic Aperture Radar (InSAR) coherence in addition to the SAR backscatter in the context of inundation mapping. As a classifier, we consider a Random Forest (RF) classification scheme using TDX/TSX SAR intensities and their bistatic InSAR coherence to extract the flood extent map. To evaluate the classification results and as no “ground truth„ was available at the SAR data acquisition time, we set up a LISFLOOD-FP hydraulic model for simulating the temporal evolution of the flood water. The flood map simulated by the model shows good performances with an Overall Accuracy (OA) of 97.92 % and a Critical Success Index (CSI) of 94 . 01 % . The SAR-derived flood map is then compared to the LISFLOOD-FP extent map simulated at the SAR data acquisition time. As a test case, we consider the flooding event of the Richelieu River that occurred in the Montérégie region of Quebec (Canada) from April to June 2011. Experimental results highlight the potential of the bistatic InSAR coherence for more accurate flood mapping in a complex landscape with urban and vegetation areas. The classification results of the SAR-derived flood map with respect to the LISFLOOD-FP flood map reach an OA of 78.65 % and a Precision of 82.08 % when integrating the bistatic InSAR coherence. These classification OA and Precision values are 69.63 % and 64.52 % , respectively, using only the TDX/TSX SAR intensity.
机译:在本文中,我们评估由BiStatic对串联X / Terrasar-X(TDX / TSX)获取的X波段合成孔径雷达(SAR)图像的洪水映射能力。主要目的是在淹没映射的背景下,研究除了SAR反向散射之外,还研究了BISTATIC TDX / TSX干涉机合成孔径雷达(INSAR)相干性的附加值。作为分类器,我们考虑使用TDX / TSX SAR强度及其双面令人隙一致性的随机森林(RF)分类方案,以提取洪水范围地图。为了评估分类结果,并且在SAR数据采集时间上提供了“地面真理”,我们建立了一种用于模拟洪水的时间演变的Lisflood-FP水力模型。模型模拟的洪水图显示出良好的性能,整体准确性(OA)为97.92%,临界成功指数(CSI)为94。 01%。然后将SAR衍生的洪泛图与SAR数据采集时间模拟的Lisflood-FP程度映射进行比较。作为一个测试案例,我们考虑从2011年4月到魁北克省魁北克(加拿大)蒙特雷吉地区发生的Richelieu河的洪水事件。实验结果突出了对复杂景观更准确的洪水映射的体育令人束缚的潜力与城市和植被区。 SAR衍生的洪水图的分类结果相对于Lisflood-FP洪水图达到了78.65%的OA,并且在整合了双面的令人隙的相干时达到了82.08%的精度。这些分类OA和精密值分别使用TDX / TSX SAR强度分别为69.63%和64.52%。

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